Janelia Research Campus, Howard Hughes Medical Institute, Ashburn, United States.
Elife. 2019 Feb 25;8:e42135. doi: 10.7554/eLife.42135.
The emergence of new and increasingly sophisticated behaviors after birth is accompanied by dramatic increase of newly established synaptic connections in the nervous system. Little is known, however, of how nascent connections are organized to support such new behaviors alongside existing ones. To understand this, in the larval zebrafish we examined the development of spinal pathways from hindbrain V2a neurons and the role of these pathways in the development of locomotion. We found that new projections are continually layered laterally to existing neuropil, and give rise to distinct pathways that function in parallel to existing pathways. Across these chronologically layered pathways, the connectivity patterns and biophysical properties vary systematically to support a behavioral repertoire with a wide range of kinematics and dynamics. Such layering of new parallel circuits equipped with systematically changing properties may be central to the postnatal diversification and increasing sophistication of an animal's behavioral repertoire.
出生后新的、日益复杂的行为的出现伴随着神经系统中新建立的突触连接的急剧增加。然而,对于新生连接如何组织以支持新的行为以及现有的行为,人们知之甚少。为了理解这一点,我们在幼鱼斑马鱼中研究了来自后脑 V2a 神经元的脊髓通路的发育以及这些通路在运动发育中的作用。我们发现,新的投射不断地横向分层到现有的神经胶中,并产生与现有通路平行发挥作用的不同通路。在这些按时间顺序分层的通路中,连接模式和生物物理特性系统地变化,以支持具有广泛运动学和动力学的行为组合。这种具有系统变化特性的新并行电路的分层可能是动物行为组合的出生后多样化和日益复杂化的核心。